BACKGROUND
[0001] The present disclosure relates generally to air inerting systems for aircraft and
other applications where an inert gas may be required and, more specifically, to catalytic
oxidation of fuel.
[0002] Aircraft fuel tanks can contain potentially combustible combinations of oxygen, fuel
vapors, and ignition sources. Commercial aviation regulations require actively managing
the risk of explosion in the vapor space (i.e., ullage) above the liquid fuel in fuel
tanks. This can be accomplished by reducing the oxygen concentration in the ullage
by displacing the air in the ullage with an inert gas containing less than 12% oxygen.
Conventional fuel tank inerting (FTI) methods include air separation module (ASM)
methods that utilize hollow fiber membranes to separate ambient air into nitrogen-enriched
air, which is directed to fuel tanks, and oxygen-enriched air, which is usually rejected
overboard. AMS methods rely on bleed air from a compressor stage of an engine, which
is not always available in the desired quantity at sufficient pressure thereby requiring
aircraft engines to idle during descent. Catalytic reactors are known from
US 3,847,298 and
US 2008/128048.
SUMMARY
[0003] In one aspect, an internal recycle reactor for catalytic inerting is provided as
defined by claim 1.
[0004] In another aspect, an internal recycle reactor for catalytic inerting is provided
as defined by claim 3.
[0005] In yet another aspect, a method of catalytic inerting is provided as defined by claim
8.
[0006] The present summary is provided only by way of example, and not limitation. Other
aspects of the present disclosure will be appreciated in view of the entirety of the
present disclosure, including the entire text, claims, and accompanying figures.
BRIEF DESCRIPTION OF THE DRAWINGS
[0007]
FIG. 1 is a schematic view of an inert gas generating system including an internal
recycle reactor for catalytic inerting.
FIG. 2 is a schematic view of one embodiment of the internal recycle reactor of FIG.
1.
FIG. 3 is a schematic view of another embodiment of the internal recycle reactor of
FIG. 1.
[0008] While the above-identified figures set forth embodiments of the present invention,
other embodiments are also contemplated, as noted in the discussion. In all cases,
this disclosure presents the invention by way of representation and not limitation.
It should be understood that numerous other modifications and embodiments can be devised
by those skilled in the art, which fall within the scope of the invention as defined
by the claims. The figures may not be drawn to scale, and applications and embodiments
of the present invention may include features, steps and/or components not specifically
shown in the drawings.
DETAILED DESCRIPTION
[0009] Catalytic oxidation of fuel is an alternative to traditional air separation modules
(ASM) used to produce inert air onboard an aircraft for uses such as fuel tank inerting
(FTI) and fire suppression. Catalytic oxidation of fuel can leverage a variety of
incoming air sources, not limited to bleed air, to produce inert air with oxygen levels
below the required 12% oxygen (or 9% for military engines) over a range of conditions.
In catalytic oxidation, a catalyst can be used to catalyze a chemical reaction between
oxygen (O
2) and fuel to produce carbon dioxide (CO
2) and water. Catalytic oxidation is an exothermic reaction, which can produce a significant
amount of heat. The heat produced must be managed to prevent damage to the oxidizer
system and to minimize any hazard to the aircraft. One method to manage the heat within
the oxidizer system is to recycle a portion of the oxidizer exhaust back to the inlet
of the reactor. The exhaust gas can internally cool the reactor and minimize heat
release within the reactor by reducing the amount of oxygen and fuel available for
reaction, minimizing the difference between inlet and outlet reactant concentrations,
and changing the residence time across the catalyst. One recycle or backmix reactor
design uses an external device, such as a blower or ejector (jet pump) to move exhaust
from the outlet of the reactor back to the inlet of the reactor. Another design uses
an impeller within the reactor to cause internal recirculation. The present disclosure
provides an alternative approach in which a catalyst and recycle loop are integrated
to form a single body ejector-style reactor, which eliminates the need for an external
recycle device.
[0010] FIG. 1 is a simplified schematic diagram of inert gas generating system 10, which
can be present on-board an aircraft. Inert gas generating system 10 includes fuel
tank 12, which includes ullage space 14 above liquid hydrocarbon fuel 16 and at least
one vent 17, combustion air source 18 providing combustion air 19 (shown in FIG. 2),
catalytic oxidation unit (COU) 20 with internal recycle (shown in greater detail in
FIGS. 2 and 3), and controller 24. Inert gas generating system 10 can produce a predominantly
inert gas by mixing hydrocarbon fuel 16 and combustion air 19, in the presence of
a catalyst (i.e., COU 20). Reaction of hydrocarbon fuel 16 and combustion air 19 produces
carbon dioxide and water vapor. The water vapor can be condensed from the exhaust
gas exiting COU 20, for example, by heat exchanger 26. The carbon dioxide is an inert
gas that is mixed with nitrogen naturally found in fresh/ambient air, and which flows
through COU 20 unreacted. The inert gas mixture of carbon dioxide and nitrogen can
be directed back to fuel tank 12 via inert gas line 27 to displace gas in ullage 14
and/or can be directed to fire suppression systems (not shown). Controller 24 can
be operatively coupled (e.g., electrically and/or communicatively) to components shown
in FIG. 1 as well as components not depicted (e.g., valves, sensors, etc.) to control
operation of inert gas generating system 10.
[0011] Liquid fuel 16 can be kerosene-based jet fuel, such as Jet-A, Jet-Al, or Jet-B fuel.
For military applications, liquid fuel 16 can also be a jet propulsion "JP" class
fuel, such as JP-5 or JP-8. Other types of fuel such as diesel, gasoline, and mixtures
of fuels are also contemplated herein. Ullage space 14, which is a vapor space present
above liquid fuel 16 in fuel tank 12, can contain potentially combustible fuel vapors.
System 10 operates to reduce the risk of combustion and explosion within ullage space
14 by providing inert gas to maintain the oxygen concentration within ullage space
14 at or below 12% oxygen by volume for commercial aviation, and below 9% by volume
for military applications.
[0012] In order to operate inert gas generating system 10, fuel 16 can be extracted from
fuel tank 12 and delivered to COU 20 via fuel supply line 28. Delivery of fuel 16
to COU 20 can be controlled by one or more valves 29. Fuel vapor 16 can mixed with
combustion air 19 prior to entering COU 20 or within a body of COU 20 for reaction
in COU 20. In some embodiments, liquid fuel 16 can be directly injected into a gas
supply line entering COU 20 (e.g., combustion air supply line 30) or into a body of
COU 20 through a fuel injector capable of atomizing fuel 16 for mixture with combustion
air 19. In alternative embodiments, fuel vapors 16 in ullage 14 can be separated from
a gaseous mixture in ullage 14 or fuel vapor 16 can be produced from liquid fuel 16
in an evaporator container (not shown). Fuel vapor 16 can be delivered to COU 20 in
combination with combustion air 19 through a gas supply line, such as combustion air
supply line 30. In some embodiments, an additional mixer, such as an ejector or jet
pump, can be used to produce a gaseous mixture of fuel 16 and combustion air 19 for
delivery to COU 20.
[0013] Combustion air 19 provides a source of oxygen for reaction with hydrocarbon fuel
16 in COU 20. Combustion air 19 can be supplied by one or more air sources including,
but not limited to, fan bleed air, ram air, cabin outflow air, and compressor bleed
air. Combustion air 19 can be supplied to COU 20 through supply line 30. Delivery
of combustion air 19 can be controlled by one or more valves 31. In some embodiments,
combustion air 19 can be cooled or heated via a heat exchanger or source of heat as
known in the art to obtain an optimal inlet gas temperature for reaction in COU 20
(not shown). In some embodiments, a temperature of the gaseous mixture of fuel 16
and combustion air 19 at a COU 20 inlet is between 150 °C and 225 °C, but this temperature
can vary depending on the type of catalyst used.
[0014] COU 20 contains a catalyst capable of inducing a chemical reaction between fuel 16
and combustion air 19. The catalyst material can include, but is not limited to, a
noble metal, transition metal, metal oxide, and combinations thereof. The catalyst
in COU 20 induces a chemical reaction between fuel 16 and combustion air 19, which
produces an exhaust gas containing carbon dioxide, water, and any unreacted gases,
which can be delivered from COU 20 through line 32. The reaction is exothermic and,
therefore, can also generate a significant amount of heat depending on the amount
of reactants available for reaction. The chemical reaction for a stoichiometric mixture
of fuel 16 and combustion air 19 has a general formula of:
C
xH
y + (x+y/4)O
2 + N2 → xCO
2 + (y/2)H
2O + N2
[0015] The exact reactions depend on the type of fuel used and types of hydrocarbons present
in the fuel mixture. For a stoichiometric mixture, the reaction results in complete
consumption of oxygen and hydrocarbons to produce an inert gas containing carbon dioxide,
water, and nitrogen, which exits COU 20 through outlet 34. Any inert gas species (e.g.,
carbon dioxide, water, and nitrogen) that enter COU 20 in the gaseous mixture of hydrocarbon
fuel 16 and combustion air 19 will not react and will thus pass through COU 20 chemically-unchanged.
If an oxygen-to-fuel ratio (ratio of oxygen in combustion air 19 to fuel 16) is greater
than stoichiometry, or having a stoichiometric ratio greater than 1, more oxygen than
needed for reaction of hydrocarbons will enter COU 20. Any unreacted oxygen will exit
COU 20 in the exhaust gas. Ideally, the gas returned to fuel tank 12 for inerting
of ullage space 14 or directed to fire suppression systems has a minimal or near-zero
concentration of oxygen for maximum inerting effect. This is accomplished by having
a near-stoichiometric air-to-fuel ratio.
[0016] The reaction of fuel 16 and combustion air 19 at near-stoichiometric conditions can
result in significant heat release, which can damage COU 20. The amount of heat produced
can be managed and reduced by recycling a portion of the exhaust gas through one or
more internal recycle passages back to a catalyst inlet.
[0017] FIG. 2 provides a schematic view of one embodiment of internal recycle COU 20. COU
20 includes integrated reactor body 36, motive fluid duct 38, fuel inlet 40, suction
chamber 42, mixing region 44, reactor section 46, outlet 34, and recycle passages
50. Motive fluid duct 38 is located upstream of reactor section 46 and configured
to deliver a motive flow of combustion air 19 to reactor section 46 for reaction.
Outlet 34 (also shown in FIG. 1) is an outlet to reactor section 46 and configured
to deliver exhaust gas 51 from reactor section 46 and COU 20. Recycle passages 50
connect outlet 34 with suction chamber inlets 53 upstream of reactor section 46. The
motive flow delivered through motive fluid duct 38 draws exhaust gas 51 through recycle
passages 50 into suction chamber 42 upstream of reactor section 46. Exhaust gas 51
mixes with combustion air 19 delivered through motive fluid duct 38 and fuel delivered
through fuel inlet 40 in mixing region 44. The gaseous mixture produced in mixing
region 44 is then delivered to reactor section 46 for catalytic inerting.
[0018] Integrated reactor body 36 can include multiple components, which can be integrally
formed, removably fastened, fixedly fastened, or manufactured or assembled using combinations
thereof. Integrated reactor body 36 can be exposed to high temperatures due to the
heat of reaction in reactor section 46. In some embodiments, temperatures may reach
or exceed 1200 degrees Celsius. For high temperature applications, integrated reactor
body 36 can be made of alloys, such as Inconel 800H/HT, to withstand thermal stresses.
[0019] Motive fluid duct 38 includes nozzle 52 configured to direct combustion air 19 to
reactor section 46 and to provide a motive flow to create suction in suction chamber
42. Combustion air 19 is supplied by combustion air source 18 (shown in FIG. 1). As
previously discussed, combustion air 19 can be a pressurized gas, including but not
limited to compressor bleed air. Combustion air 19 can be cooled or heated via a heat
exchanger or source of heat as known in the art (not shown) to obtain an optimal inlet
gas temperature for reaction in COU 20.
[0020] Nozzle 52 can have a converging shape configured to accelerate the flow of combustion
air through the nozzle and increase the velocity of combustion air 19. Nozzle 52 can
have an outlet orifice 54 opening toward reactor section 46 to direct motive flow
to catalyst 60. The high velocity combustion air 19 reduces pressure in suction chamber
42. A pressure differential created across recycle passage 50 causes higher pressure
exhaust gas 51 at outlet 34 to enter recycle passage inlet 56 and flow toward lower
pressure suction chamber 42. Combustion air 19 enters suction chamber 42 at inlet
53. The pressure differential created by motive fluid duct 38 provides for automatic
recycle of exhaust gas 51 without the need for an external blower or pump. Delivery
of the combustion air 19 can be controlled by controller 24 and one or more valves
to increase or decrease the velocity of combustion air 19 entering COU 20 and thereby
recycle of exhaust gas 51.
[0021] Fuel 16, supplied by fuel tank 12 (shown in FIG. 1) enters COU 20 via supply line
28 (shown in FIG. 1) and fuel inlet 40. Fuel inlet 40 can be configured to directly
inject liquid fuel 16 into mixing region 44 or a region upstream of mixing region
44 via a fuel injector nozzle capable of atomizing liquid fuel 16. Alternatively,
fuel vapor 16 can supplied from ullage (shown in FIG. 1) or an evaporator (not shown)
via supply line 28 to fuel inlet 40.
[0022] Mixing region 44 is immediately upstream of reactor section 46 and is configured
to mix combustion air 19, fuel 16, and exhaust gas 51 to produce gaseous mixture 58
upstream of reactor section 46. Gaseous mixture 58 enters reactor section 46 for catalytic
reaction.
[0023] Reactor section 46 contains catalyst 60. Catalyst 60 can be a monolithic solid body
permeable to gaseous mixture 58. In some embodiments, catalyst 60 can have a honeycomb-like
structure suitable for providing a reactive surface area as known in the art. Catalyst
60 can consist of noble metals, transition metals, metal oxides, and combinations
thereof. Both catalyst 60 and reactor section 46 can be cylindrical in shape with
catalyst 60 closely fitted within reactor section 46 to prevent gaseous mixture 58
from bypassing catalyst 60. Catalyst 60 has a cross-sectional area substantially equal
to an inner cross-sectional area of reactor section 46 or an outer diameter substantially
equal to an inner diameter of reactor section 46. In such configuration, gaseous mixture
58 is forced to flow through catalyst 60. As shown in FIG. 2, catalyst 60 extends
a full length of reactor section 46. In a non-limiting example, catalyst 60 can be
supported on a metallic or ceramic monolith substrate having a length ranging from
25 mm to 150 mm, diameter of 25 mm to 90 mm, and number of cells per square inch (CPSI)
between 200 and 600 (31-93 cells per square centimeter).
[0024] As previously discussed, fuel 16 and combustion air 19 react in the presence of catalyst
60 to produce carbon dioxide and water. The addition of exhaust gas 51 can internally
cool the reactor and minimize heat release within the reactor by reducing the amount
of oxygen and fuel available for reaction, minimizing the difference between inlet
and outlet reactant concentrations across catalyst 60, and changing the residence
time across catalyst 60. Because the inert gases present in exhaust gas 51 (carbon
dioxide, water, and nitrogen) do not react with catalyst 60, no heat is generated
by this portion of exhaust gas 51 flowing through catalyst 60. The inert gas passes
through catalyst 60 chemically unchanged, although it can absorb heat generated in
reaction section 46 by the reaction of fuel 16 and combustion air 19.
[0025] Exhaust gas 51 can be recycled at any given or predetermined ratio or percentage.
In a non-limiting example, 95% of exhaust gas 51 may be recycled with only 5% being
directed to ullage 14 or fire suppression systems. Alternatively, 5% of exhaust gas
may be recycled with 95% being directed to ullage 14 or fire suppression systems.
These values are merely examples. The amount of exhaust gas 51 recycled can be varied
depending on a number of factors, including but not limited to, a desired reactor
temperature during steady-state operation. In some embodiments, recycle can be passive
with a recycle rate high as possible at all time, generally greater than 20:1. In
alternative embodiments, the recycle rate can be controlled by varying the input pressure
on an inlet side of the ejector via one or more control valves (e.g., varying the
total flow rate of combustion air 19).
[0026] Exhaust gas 51 is recycled through recycle passages 50. Although two recycle passages
50 are illustrated, the number of recycle passages 50 can be increased or decreased
as appropriate with some embodiments having only one recycle passage 50. Each recycle
passage 50 includes inlet 56 and outlet 53 (suction chamber inlet 53). Inlets 56 are
positioned at outlet 34 of reactor section 46. Inlets 56 can be evenly distributed
about an inner wall of outlet 56 or arranged in any configuration suitable for delivering
exhaust gas 51 to an inlet of catalyst 60. Suction chamber inlets 53 can be evenly
distributed about an inner wall of suction chamber 42 or can be arranged in any manner
suitable to facilitate mixing in mixing region 44. Generally, suction inlets 53 can
be perpendicular to nozzle outlet orifice 54. Recycle passages 50 can be made from
aluminum, stainless steel, or other material suitable for delivering a pressurized
and high-temperature gas. The portion of exhaust gas 51 not recycled through recycle
passages 50 is delivered out of COU 20 through outlet 34 for fuel tank inerting and/or
fire suppression applications.
[0027] Integrated reactor body 36 integrates recycle passage 50 and motive fluid duct 38
into COU 20 in a manner that allows a portion of exhaust gas 51 to be automatically
recycled through reactor section 46 without use of an external blower. This has the
additional benefit of reducing the number of parts for system 10, as well as reducing
the weight and volume of the overall system.
[0028] FIG. 3 provides schematic views of an alternative embodiment of internal recycle
COU 20 of FIG. 1, illustrated as COU 20' in FIG. 3. COU 20' includes integrated reactor
body 37, motive fluid duct 62, suction chamber 42, mixing region 44, reactor section
46, outlet 34, and recycle passages 50. Motive fluid duct 62 is located upstream of
reactor section 46 and configured to deliver a motive flow of reactant gas 64 to reactor
section 46 for reaction. Outlet 34 is an outlet to reactor section 46 and configured
to deliver exhaust gas 51 from reactor section 46. Recycle passages 50 connect outlet
34 with suction chamber inlets 53 upstream of reactor section 46. The motive flow
delivered through motive fluid duct 62 draws exhaust gas 34 through one or more recycle
passages 50 into suction chamber 42 upstream of reactor section 46. Exhaust gas 51
mixes with reactant gas 64 delivered through motive fluid duct 62 in mixing region
44. The gaseous mixture 58 produced in mixing region 44 is then delivered to reactor
section 46 for catalytic inerting.
[0029] Integrated reactor body 37 is similar to integrated reactor body 36 of FIG. 2 with
the exception of the configuration of motive fluid duct 62. Integrated reactor body
37 can include multiple components, including an ejector with motive fuel duct 62,
suction chamber 42, mixing region 44, reactor section 46, and outlet 34, and recycle
passages 50. These components can be integrally formed, removably fastened, fixedly
fastened, or manufactured or assembled using combinations thereof. Integrated reactor
body 37 can be exposed to high temperatures due to the heat of reaction in reactor
section 46. In some embodiments, temperatures may reach or exceed 1200 degrees Celsius.
For high temperature applications, integrated reactor body 36 can be made of alloys,
such as Inconel 800H/HT,to withstand thermal stresses.
[0030] Motive fluid duct 62 includes nozzle 66 configured to direct reactant gas 64 to reactor
section 46 and to provide a motive flow to create suction in suction chamber 42. Nozzle
66 can have a converging shape configured to accelerate the flow of the reactant gas
through the nozzle and increase the velocity of the reactant gas. Nozzle 66 can have
outlet orifice 68 opening toward reactor section 46 to direct flow to catalyst 60.
The high velocity reactant gas reduces pressure in suction chamber 42. A pressure
differential created across recycle passage 50 causes higher pressure exhaust gas
51 at outlet 34 to enter recycle passage inlet 56 and flow toward lower pressure suction
chamber 42. The reactant gas enters suction chamber 42 at inlet 53. The pressure differential
created by motive fluid duct 34 provides for automatic recycle of exhaust gas 51 without
the need for an external blower or pump. Delivery of the motive fluid can be controlled
by controller 24 and one or more valves to increase or decrease the velocity of the
reactant gas entering COU 20' and thereby recycle of exhaust gas 51.
[0031] Reactant gas 64 provided as motive fluid in COU 20' is a mixture of fuel 16 and combustion
air 19 with a predefined stoichiometric oxygen-to-fuel ratio, delivered through supply
lines 28 and/or 30 (shown in FIG. 1). Reactant gas 64 can be cooled or heated via
a heat exchanger or source of heat as known in the art (not shown) to obtain an optimal
inlet gas temperature for reaction in COU 20'.
[0032] Mixing region 44 is immediately upstream of reactor section 46 and is configured
to mix reactant gas 64 with exhaust gas 51 to produce gaseous mixture 58 upstream
of reactor section 46. Gaseous mixture 58 enters reactor section 46 for catalytic
reaction.
[0033] Reactor section 46 contains catalyst 60. Catalyst 60 can be a monolithic solid body
permeable to gaseous mixture 58. In some embodiments, catalyst 60 can have a honeycomb-like
structure suitable for providing a reactive surface area as known in the art. Catalyst
60 can consist of noble metals, transition metals, metal oxides, and combinations
thereof. Both catalyst 60 and reactor section 46 can be cylindrical in shape with
catalyst 60 closely fitted within reactor section 46 to prevent gaseous mixture 58
from bypassing catalyst 60. Catalyst 60 can has a cross-sectional area substantially
equal to an inner cross-sectional area of reactor section 46 or an outer diameter
substantially equal to an inner diameter of reactor section 46. In such configuration,
gaseous mixture 58 is forced to flow through catalyst 60. As shown in FIG. 3, catalyst
60 extends a full length of reactor section 46. In a non-limiting example, catalyst
60 can be supported on a metallic or ceramic monolith substrate having a length ranging
from 25 mm to 150 mm, diameter of 25 mm to 90 mm, and number of cells per square inch
(CPSI) between 200 and 600 (31-93 cells per square centimeter).
[0034] As previously discussed, fuel 16 and combustion air 19 react in the presence of catalyst
60 to produce carbon dioxide and water. The addition of exhaust gas 51 can internally
cool the reactor and minimize heat release within the reactor by reducing the amount
of oxygen and fuel available for reaction, minimizing the difference between inlet
and outlet reactant concentrations across catalyst 60, and changing the residence
time across catalyst 60. Because the inert gases present in exhaust gas 51 (carbon
dioxide, water, and nitrogen) do not react with catalyst 60, no heat is generated
by this portion of exhaust gas 51 flowing through catalyst 60. The inert gas passes
through catalyst 60 chemically unchanged, although it can absorb heat generated in
reaction section 46 by the reaction of fuel 16 and combustion air 19.
[0035] Exhaust gas 51 can be recycled at any given or predetermined ratio or percentage.
In a non-limiting example, 95% of exhaust gas 51 may be recycled with only 5% being
directed to ullage 14 or fire suppression systems. Alternatively, 5% of exhaust gas
may be recycled with 95% being directed to ullage 14 or fire suppression systems.
These values are merely examples. The amount of exhaust gas 51 recycled can be varied
depending on a number of factors, including but not limited to, a desired reactor
temperature during steady-state operation. In some embodiments, recycle can be passive
with a recycle rate high as possible at all time, generally greater than 20:1. In
alternative embodiments, the recycle rate can be controlled by varying the input pressure
on an inlet side of the ejector via one or more control valves (e.g., varying the
total flow rate of combustion air 19).
[0036] Exhaust gas 51 is recycled through recycle passages 50. Each recycle passage 50 includes
inlet 56 and outlet 53 (suction chamber inlet 53). Inlets 56 are positioned at outlet
34 of reactor section 46. Inlets 56 can be evenly distributed about an inner wall
of outlet 56 or arranged in any configuration suitable for delivering exhaust gas
51 to an inlet of catalyst 60. Suction chamber inlets 53 can be evenly distributed
about an inner wall of suction chamber 42 or can be arranged in any manner suitable
to facilitate mixing in mixing region 44. Generally, suction inlets 53 can be perpendicular
to motive fluid duct outlet 319. Recycle passages 50 can be made from aluminum, stainless
steel, or other material suitable for delivering a pressurized and high-temperature
gas. The portion of exhaust gas 51 not recycled through recycle passages 50 is delivered
out of COU 20' through outlet 34 for fuel tank inerting and fire suppression applications.
[0037] Integrated reactor body 37 integrates recycle passage 50 and motive fluid duct 62
into COU 20' in a manner that allows a portion of exhaust gas 51 to be automatically
recycled through reactor section 46 without use of an external blower.
[0038] The ejector-like reactor designs of COU 20 and COU 20' can be used to manage heat
generation in catalytic oxidation while eliminating the need for an external recycle
device. By placing catalyst 60 inside an ejector body 36, 37, exhaust gas 51 is automatically
recycled back through catalyst 60.
Summation
[0039] Any relative terms or terms of degree used herein, such as "substantially", "essentially",
"generally", "approximately" and the like, should be interpreted in accordance with
and subject to any applicable definitions or limits expressly stated herein. In all
instances, any relative terms or terms of degree used herein should be interpreted
to broadly encompass any relevant disclosed embodiments as well as such ranges or
variations as would be understood by a person of ordinary skill in the art in view
of the entirety of the present disclosure, such as to encompass ordinary manufacturing
tolerance variations, incidental alignment variations, transient alignment or shape
variations induced by thermal, rotational or vibrational operational conditions, and
the like. Moreover, any relative terms or terms of degree used herein should be interpreted
to encompass a range that expressly includes the designated quality, characteristic,
parameter or value, without variation, as if no qualifying relative term or term of
degree were utilized in the given disclosure or recitation.
[0040] While the invention has been described with reference to an exemplary embodiment(s),
it will be understood by those skilled in the art that various changes may be made
without departing from the scope of the invention. In addition, many modifications
may be made to adapt a particular situation or material to the teachings of the invention
without departing from the scope thereof. Therefore, it is intended that the invention
not be limited to the particular embodiment(s) disclosed, but that the invention will
include all embodiments falling within the scope of the appended claims.
1. An internal recycle reactor for catalytic inerting that is a monolithic body comprising:
a motive fluid duct (38) having an outlet orifice (54);
a suction chamber (42) comprising a suction chamber inlet (53); and
a fuel inlet (40);
a mixing region (44) configured to receive separate gaseous fluids from the motive
fluid outlet orifice (54), the suction chamber inlet (53) and the fuel inlet (40)
to produce a gaseous mixture (58);
a reactor section (46) comprising a catalyst (60), wherein the reactor section is
configured to receive the gaseous mixture (58) from the mixing region (44);
an outlet (34) configured to deliver an exhaust gas (51) from the reactor section;
and
a recycle passage (50) fluidly connecting the outlet (34) to the suction chamber inlet
(53) and configured to deliver a portion of the exhaust gas (51) to the suction chamber
(42) through the suction chamber inlet (53).
2. The internal recycle reactor of claim 1, wherein the motive fluid duct comprises a
converging nozzle (52) configured to direct a reactant gas to the reactor section.
3. An internal recycle reactor for catalytic inerting comprising:
an ejector comprising:
a motive fluid duct (62), having an outlet orifice (68);
a suction chamber (42) having a suction chamber inlet (53); and
a mixing region (44) configured to receive gaseous fluids from the motive fluid duct
(62) and the suction chamber inlet (53) and to produce a gaseous mixture (58);
a reactor section (46) comprising a catalyst (60), positioned to receive the gaseous
mixture (58) from the mixing region (44) and configured to react with the gaseous
mixture (58) to form an exhaust gas (51); and
an outlet (34) configured to deliver an exhaust gas (51) from the reactor section
(46); characterised by a plurality of recycle passages (50) fluidly connecting the outlet (34) to the suction
chamber inlet (53) and configured to deliver a portion of the exhaust gas (51) to
the suction chamber inlet (53).
4. The internal recycle reactor of claim 3, wherein the motive fluid duct (62) comprises
a converging nozzle (66) configured to direct a reactant gas to a catalyst (60).
5. The internal recycle reactor of claim 2 or claim 4, wherein the suction chamber inlet
(53) is perpendicular to an outlet orifice (54, 68) of the converging nozzle (52,
66).
6. The internal recycle reactor of claim 4 or 5, wherein the catalyst (60) fills a cross-sectional
area of the reactor section (46) to prevent the gaseous mixture (58) from bypassing
the catalyst (60), wherein the cross-section is taken along a plane perpendicular
to a length of the reactor section (46).
7. The internal recycle reactor of claim 6, wherein the catalyst (60) comprises a material
selected from the group consisting of noble metals, transition metals, metal oxides,
and combinations thereof.
8. A method of catalytic inerting using an internal recycle reactor of any preceding
claim, comprising:
flowing a reactant gas to an inlet (38, 62) of the ejector;
flowing a portion of the exhaust gas (51) from the ejector outlet (34) to the suction
chamber inlet (53) of the ejector;
mixing the reactant gas with the exhaust gas (51) to produce a gaseous mixture (58);
flowing the gaseous mixture (58) through the catalyst (60) disposed in the ejector;
and
flowing the exhaust gas (51) from the catalyst (60) to the recycle passage(s) (50),
wherein the recycle passage(s) fluidly connects the ejector outlet (34) to the suction
chamber inlet (53) of the ejector.
9. The method of claim 8, wherein the reactant gas provides a motive flow that drives
the flow of the exhaust gas (51) into the suction chamber inlet (53) by suction.
10. The method of claim 9, wherein the reactant gas is a mixture of fuel and air.
11. The method of claim 9, wherein the reactant gas is air and wherein the method further
comprises injecting a fuel into the mixing region (44).
12. The method of claim 9, 10 or 11 and further comprising:
reacting the gaseous mixture (58) with a catalyst (60) to produce an inert gas, wherein
the exhaust gas (51) comprises the inert gas.
13. The method of claim 12, wherein the catalyst (60) is disposed in a reactor section
(46) of the ejector located between a mixing region (44) and the outlet (34) and wherein
the catalyst (60) fills a cross-sectional area of the reactor section (46) such that
the gaseous mixture (58) is directed through the catalyst (60).
14. The method of any of claims 8 to 13, wherein the catalyst (60) comprises a material
selected from the group consisting of noble metals, transition metals, metal oxides,
and combinations thereof.
1. Reaktor mit interner Rückführung zur katalytischen Inertisierung, welcher ein monolithischer
Körper ist, umfassend:
einen Antriebsflüssigkeitskanal (38), welcher eine Auslassöffnung (54) aufweist;
eine Saugkammer (42), welche einen Saugkammereinlass (53) aufweist; und
einen Kraftstoffeinlass (40);
einen Mischbereich (44), welcher dazu konfiguriert ist, getrennte gasförmige Flüssigkeiten
von der Auslassöffnung (54) für die Antriebsflüssigkeit, dem Saugkammereinlass (53)
und dem Brennstoffeinlass (40) aufzunehmen, um ein Gasgemisch (58) zu erzeugen;
einen Reaktorabschnitt (46), welcher einen Katalysator (60) umfasst, wobei der Reaktorabschnitt
dazu konfiguriert ist, das Gasgemisch (58) aus dem Mischbereich (44) aufzunehmen;
einen Auslass (34), welcher dazu konfiguriert ist, eine Abgas (51) aus dem Reaktorabschnitt
zu liefern; und
einen Rückführungsdurchgang (50), welcher den Auslass (34) mit dem Saugkammereinlass
(53) verbindet und dazu konfiguriert ist, einen Teil des Abgases (51) über den Saugkammereinlass
(53) in die Saugkammer (42) zu liefern.
2. Reaktor mit interner Rückführung nach Anspruch 1, wobei der Antriebsflüssigkeitskanal
eine konvergierende Düse (52) umfasst, welche dazu konfiguriert ist, ein Reaktandgas
zu dem Reaktorabschnitt zu leiten.
3. Reaktor mit interner Rückführung zur katalytischen Inertisierung, umfassend
einen Ejektor, welcher Folgendes umfasst:
einen Antriebsflüssigkeitskanal (62), welcher eine Auslassöffnung (68) aufweist;
eine Saugkammer (42), welche einen Saugkammereinlass (53) aufweist; und
einen Mischbereich (44), welcher dazu konfiguriert ist, gasförmige Flüssigkeiten aus
der Antriebsflüssigkeitsleitung (62) und dem Saugkammereinlass (53) aufzunehmen und
ein Gasgemisch (58) zu erzeugen;
einen Reaktorabschnitt (46), welcher einen Katalysator (60) umfasst, welcher so positioniert
ist, dass er das Gasgemisch (58) aus dem Mischbereich (44) aufnimmt, und dazu konfiguriert
ist, mit dem Gasgemisch (58) zu reagieren, um ein Abgas (51) zu bilden; und
einen Auslass (34), welcher dazu konfiguriert ist, ein Abgas (51) aus dem Reaktorabschnitt
(46) zu liefern;
gekennzeichnet durch
eine Vielzahl von Rückführungsdurchgängen (50), welche den Auslass (34) mit dem Saugkammereinlass
(53) fluidverbinden und dazu konfiguriert sind, einen Teil des Abgases (51) zu dem
Saugkammereinlass (53) zu liefern.
4. Reaktor mit interner Rückführung nach Anspruch 3, wobei der Antriebsflüssigkeitskanal
(62) eine konvergierende Düse (66) umfasst, welche dazu konfiguriert ist, ein Reaktandgas
zu einem Katalysator (60) zu leiten.
5. Reaktor mit interner Rückführung nach Anspruch 2 oder 4, wobei der Saugkammereinlass
(53) senkrecht zu einer Auslassöffnung (54, 68) der konvergierenden Düse (52, 66)
ist.
6. Reaktor mit interner Rückführung nach Anspruch 4 oder 5, wobei der Katalysator (60)
einen Querschnittsbereich des Reaktorabschnitts (46) ausfüllt, um zu verhindern, dass
das Gasgemisch (58) den Katalysator (60) umgeht, wobei der Querschnitt entlang einer
Ebene gemessen wird, welche senkrecht zu einer Länge des Reaktorabschnitts (46) verläuft.
7. Reaktor mit interner Rückführung nach Anspruch 6, wobei der Katalysator (60) ein Material
umfasst, welches aus der Gruppe ausgewählt ist bestehend aus Edelmetallen, Übergangsmetallen,
Metalloxiden und Kombinationen davon.
8. Verfahren zur katalytischen Inertisierung unter Verwendung eines Reaktors mit interner
Rückführung nach einem der vorhergehenden Ansprüche, umfassend:
Strömen eines Reaktandgases zu einem Einlass (38, 62) des Ejektors;
Strömen eines Teils des Abgases (51) von dem Ejektorauslass (34) zu dem Saugkammereinlass
(53) des Ejektors;
Mischen des Reaktandgases mit dem Abgas (51), um ein Gasgemisch (58) zu erzeugen;
Strömen des Gasgemischs (58) durch den Katalysator (60), welcher in dem Ejektor angeordnet
ist; und
Strömen des Abgases (51) von dem Katalysator (60) zu dem/den Rückführungsdurchgang/-durchgängen
(50),
wobei der/die Rückführungsdurchgang/-durchgänge den Ejektorauslass (34) mit dem Saugkammereinlass
(53) des Ejektors verbindet/verbinden.
9. Verfahren nach Anspruch 8, wobei das Reaktandgas einen Antriebsstrom bereitstellt,
welcher den Strom des Abgases (51) durch Ansaugen in den Saugkammereinlass (53) treibt.
10. Verfahren nach Anspruch 9, wobei das Reaktandgas ein Gemisch aus Kraftstoff und Luft
ist.
11. Verfahren nach Anspruch 9, wobei das Reaktandgas Luft ist und wobei das Verfahren
ferner ein Einspritzen eines Treibstoffs in den Mischbereich (44) umfasst.
12. Verfahren nach Anspruch 9, 10 oder 11 und ferner umfassend:
Reagieren des Gasgemisches (58) mit einem Katalysator (60), um ein Inertgas zu erzeugen,
wobei das Abgas (51) das Inertgas umfasst.
13. Verfahren nach Anspruch 12, wobei der Katalysator (60) in einem Reaktorabschnitt (46)
des Ejektors angeordnet ist, welcher sich zwischen einem Mischbereich (44) und dem
Auslass (34) befindet, und wobei der Katalysator (60) einen Querschnittsbereich des
Reaktorabschnitts (46) füllt, so dass das Gasgemisch (58) durch den Katalysator (60)
geleitet wird.
14. Verfahren nach einem der Ansprüche 8 bis 13, wobei der Katalysator (60) ein Material
umfasst, welches ausgewählt ist aus der Gruppe bestehend aus Edelmetallen, Übergangsmetallen,
Metalloxiden und Kombinationen davon.
1. Réacteur de recyclage interne d'inertage catalytique qui est un corps monolithique
comprenant :
un conduit de fluide moteur (38) ayant un orifice de sortie (54) ;
une chambre d'aspiration (42) comprenant une entrée de chambre d'aspiration (53) ;
et
une entrée de carburant (40) ;
une région de mélange (44) conçue pour recevoir des fluides gazeux séparés en provenance
de l'orifice de sortie de fluide moteur (54), de l'entrée de chambre d'aspiration
(53) et de l'entrée de carburant (40) pour produire un mélange gazeux (58) ;
une section de réacteur (46) comprenant un catalyseur (60), dans lequel la section
de réacteur est conçue pour recevoir le mélange gazeux (58) en provenance de la région
de mélange (44) ;
une sortie (34) conçue pour délivrer un gaz d'échappement (51) en provenance de la
section de réacteur ; et
un passage de recyclage (50) reliant fluidiquement la sortie (34) à l'entrée de chambre
d'aspiration (53) et conçu pour délivrer une partie du gaz d'échappement (51) à la
chambre d'aspiration (42) à travers l'entrée de chambre d'aspiration (53).
2. Réacteur de recyclage interne selon la revendication 1, dans lequel le conduit de
fluide moteur comprend une buse convergente (52) conçue pour diriger un gaz réactif
vers la section de réacteur.
3. Réacteur de recyclage interne d'inertage catalytique comprenant :
un éjecteur comprenant :
un conduit de fluide moteur (62) ayant un orifice de sortie (68) ;
une chambre d'aspiration (42) ayant une entrée de chambre d'aspiration (53) ; et
une région de mélange (44) conçue pour recevoir des fluides gazeux en provenance du
conduit de fluide moteur (62) et de l'entrée de chambre d'aspiration (53) et pour
produire un mélange gazeux (58) ;
une section de réacteur (46) comprenant un catalyseur (60), positionné pour recevoir
le mélange gazeux (58) en provenance de la région de mélange (44) et conçu pour réagir
avec le mélange gazeux (58) pour former un gaz d'échappement (51) ; et
une sortie (34) conçue pour délivrer un gaz d'échappement (51) en provenance de la
section de réacteur (46) ;
caractérisé par
une pluralité de passages de recyclage (50) reliant fluidiquement la sortie (34) à
l'entrée de chambre d'aspiration (53) et conçus pour délivrer une partie du gaz d'échappement
(51) à l'entrée de chambre d'aspiration (53).
4. Réacteur de recyclage interne selon la revendication 3, dans lequel le conduit de
fluide moteur (62) comprend une buse convergente (66) conçue pour diriger un gaz réactif
vers un catalyseur (60).
5. Réacteur de recyclage interne selon la revendication 2 ou la revendication 4, dans
lequel l'entrée de chambre d'aspiration (53) est perpendiculaire à un orifice de sortie
(54, 68) de la buse convergente (52, 66).
6. Réacteur de recyclage interne selon la revendication 4 ou 5, dans lequel le catalyseur
(60) remplit une section transversale de la section de réacteur (46) pour empêcher
le mélange gazeux (58) de contourner le catalyseur (60),
dans lequel la section transversale est prise le long d'un plan perpendiculaire à
une longueur de la section de réacteur (46).
7. Réacteur de recyclage interne selon la revendication 6, dans lequel le catalyseur
(60) comprend un matériau choisi dans le groupe constitué des métaux nobles, des métaux
de transition, des oxydes métalliques et leurs combinaisons.
8. Procédé d'inertage catalytique utilisant un réacteur de recyclage interne selon une
quelconque revendication précédente, comprenant :
l'écoulement d'un gaz réactif vers une entrée (38, 62) de l'éjecteur ;
l'écoulement d'une partie du gaz d'échappement (51) de la sortie de l'éjecteur (34)
vers l'entrée de chambre d'aspiration (53) de l'éjecteur ;
le mélange du gaz réactif avec le gaz d'échappement (51) pour produire un mélange
gazeux (58) ;
l'écoulement du mélange gazeux (58) à travers le catalyseur (60) disposé dans l'éjecteur
; et
l'écoulement du gaz d'échappement (51) du catalyseur (60) au(x) passage(s) de recyclage
(50),
dans lequel le(s) passage(s) de recyclage relie(nt) fluidiquement la sortie d'éjecteur
(34) à l'entrée de chambre d'aspiration (53) de l'éjecteur.
9. Procédé selon la revendication 8, dans lequel le gaz réactif fournit un flux moteur
qui entraîne l'écoulement du gaz d'échappement (51) dans l'entrée de chambre d'aspiration
(53) par aspiration.
10. Procédé selon la revendication 9, dans lequel le gaz réactif est un mélange de carburant
et d'air.
11. Procédé selon la revendication 9, dans lequel le gaz réactif est l'air et dans lequel
le procédé comprend en outre l'injection d'un carburant dans la région de mélange
(44).
12. Procédé selon la revendication 9, 10 ou 11, et comprenant en outre :
la réaction du mélange gazeux (58) avec un catalyseur (60) pour produire un gaz inerte,
dans lequel le gaz d'échappement (51) comprend le gaz inerte.
13. Procédé selon la revendication 12, dans lequel le catalyseur (60) est disposé dans
une section de réacteur (46) de l'éjecteur située entre une zone de mélange (44) et
la sortie (34) et dans lequel le catalyseur (60) remplit une zone de section transversale
de la section de réacteur (46) de sorte que le mélange gazeux (58) est dirigé à travers
le catalyseur (60).
14. Procédé selon l'une quelconque des revendications 8 à 13, dans lequel le catalyseur
(60) comprend un matériau choisi dans le groupe constitué des métaux nobles, des métaux
de transition, des oxydes métalliques et leurs combinaisons.